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Enhancing grain boundary ionic conductivity in mixed ionic–electronic conductors

机译:增强离子-电子混合导体中的晶界离子电导率

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摘要

Mixed ionic–electronic conductors are widely used in devices for energy conversion and storage. Grain boundaries in these materials have nanoscale spatial dimensions, which can generate substantial resistance to ionic transport due to dopant segregation. Here, we report the concept of targeted phase formation in a Ce0.8Gd0.2O2−δ–CoFe2O4 composite that serves to enhance the grain boundary ionic conductivity. Using transmission electron microscopy and spectroscopy approaches, we probe the grain boundary charge distribution and chemical environments altered by the phase reaction between the two constituents. The formation of an emergent phase successfully avoids segregation of the Gd dopant and depletion of oxygen vacancies at the Ce0.8Gd0.2O2−δ–Ce0.8Gd0.2O2−δ grain boundary. This results in superior grain boundary ionic conductivity as demonstrated by the enhanced oxygen permeation flux. This work illustrates the control of mesoscale level transport properties in mixed ionic–electronic conductor composites through processing induced modifications of the grain boundary defect distribution.
机译:混合的离子电子导体广泛用于能量转换和存储的设备中。这些材料中的晶界具有纳米级的空间尺寸,由于掺杂剂的偏析,可产生对离子传输的实质性抵抗力。在这里,我们报告了在Ce0.8Gd0.2O2-δ-CoFe2O4复合材料中形成目标相的概念,该复合物用于增强晶界离子电导率。使用透射电子显微镜和光谱学方法,我们探究了两种成分之间的相反应改变了的晶界电荷分布和化学环境。出晶相的形成成功地避免了Ce0.8Gd0.2O2-δ-Ce0.8Gd0.2O2-δ晶界处的Gd掺杂物偏析和氧空位的耗尽。如增强的氧渗透通量所证明的,这导致优异的晶界离子电导率。这项工作说明了通过加工引起的晶界缺陷分布的改性来控制混合离子-电子导体复合材料的中尺度能级传输特性。

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